Highlights
• Multi-scale light-trapped insect-DINO detector (MLTIDD) with segment anything model (SAM) and slicing-aided hyper inference (SAHI) effectively detects tiny insects in light-trapped images.
• MLTIDD demonstrates robust generalization across diverse light-trapped scenarios.
• InsectSSRL with multiple proxy tasks learns robust insect feature representations.
• Vision transformer (ViT) trained with InsectSSRL exhibits exceptional few-shot learning capability.
• Proposed data construction method reduces expert annotation time by 80% while maintaining precision.
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